Method for detecting the inhibition of antimicrobial agents against bacteria, bacterial counting apparatus and method thereof

The electrical resistance counting method with adjusted gemstone pores and clogging prevention techniques enables rapid and accurate bacterial counting, addressing the time and accuracy issues of conventional methods, facilitating same-day targeted antibiotic therapy.

JP7846989B2Active Publication Date: 2026-04-16NANJING SINORUIKANG MEDICAL TECHNOLOGY CO LTD +1
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Patent Information

Application Number
JP2021562041
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-12
Filing Date
2020-04-17
Publication Date
2026-04-16
Estimated Expiration
2040-04-17

AI Technical Summary

Technical Problem

Conventional methods for detecting the inhibition of antimicrobial agents against bacteria are time-consuming, leading to delayed antibiotic selection, and existing bacterial counting devices are inaccurate due to the size and morphology of bacteria, which cannot pass through gemstone pores one by one, causing clogging and overlapping issues.

Method used

A method and device using electrical resistance counting with adjusted gemstone pore diameters to allow single bacterial passage, combined with backwashing and cauterization to prevent clogging, enabling rapid and accurate bacterial counting.

Benefits of technology

Rapid reporting of bacterial inhibition within 1-2 hours, allowing same-day targeted antibiotic therapy, reducing patient mortality and medical costs, with improved accuracy and automation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a method for detecting the inhibition of antibiotics against bacteria, a bacteria counting device, and the method. The inhibition detection method includes the steps of: adding a predetermined concentration of antibiotic to a target bacterium to form a bacteria-drug mixture; and using a target bacterium without the antibiotic as a positive control; acquiring the current number of the bacteria in the bacteria-drug mixture and the current number of the bacteria in the positive control at a first predetermined time interval after the antibiotic is added; and determining whether the predetermined concentration of antibiotic inhibits, partially inhibits, or does not inhibit the bacteria based on the ratio of the current number of the bacteria in the bacteria-drug mixture to the current number of the bacteria in the positive control. The method is suitable for rapid drug susceptibility testing.
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Description

Technical Field

[0001] The present invention relates to the field of biopharmaceuticals, and specifically, to a method for detecting the inhibition of antibacterial drugs against bacteria, a bacterial counting device, and a method thereof.

Background Art

[0002] Nowadays, the problem of bacterial drug resistance is intensifying and spreading rapidly around the world, and governments of various countries attach great importance to this. In our country, many regulations have been introduced in terms of management, and the rational use of antibiotics is the most important work in dealing with bacterial drug resistance. Among them, the rapid susceptibility test of antibiotics is particularly important.

[0003] With the development of mass spectrometry technology and nucleic acid technology, the rapid identification of bacteria has been almost realized (completed in 1-2 hours with results available on the same day). Therefore, the research and development of rapid susceptibility tests for new antibiotics have become an urgent task and have practical significance. It is fundamental to switch from empirical broad-spectrum antibiotic therapy to targeted therapy as soon as possible in antibiotic management. However, in conventional drug susceptibility tests, the reporting time has become a bottleneck in clinical diagnosis and treatment. In the conventional manual method, the reporting time is too long, so currently, fully automated drug susceptibility test methods are used clinically. Among them, the VITEK system of bioMérieux in France and the Phoenix system of BD in the United States are the fastest detection systems. Although the reliability and accuracy of the two systems have been recognized, on average, Phoenix takes 12.1 hours and Vitek2 takes 9.8 hours. Considering the daily work flow and working hours of doctors, with such a reporting time, it is impossible to select the correct drug until the next day.

[0004] Traditionally, numerous studies have been conducted both domestically and internationally to shorten the reporting time for drug susceptibility testing. Various methods have been developed, including mass spectrometry, flow cytometry, cantilever vibration-based microbial cell gravimetric analysis, micro-isothermal production, magnetic bead rotation, microdroplet detection, real-time PCR, microarray analysis, conductivity analysis, surface plasmon resonance analysis, RNA sequencing, phage analysis, real-time microscopy, and microsonic analysis. However, these technologies remain in the research stage, only small sample volumes are analyzed, require specialized technicians to operate, involve expensive and non-traditional dedicated equipment, are complex to operate, have unstable performance, are costly, and are not convenient to use, making their practical application uncertain.

[0005] Rapid drug susceptibility testing is broadly classified into two types: phenotypic and nonphenotypic. Nonphenotypic methods are mainly nucleic acid-based molecular biological techniques, such as real-time PCR, microarrays, RNA sequencing, transcriptome sequencing, and whole-genome sequencing. The advantages are as follows: 1. Less time required. Direct multiplex PCR, such as on positive blood cultures, can detect various drug resistance genes. 2. Quantitative analysis can be achieved with digital PCR. 3. Clearly addresses drug resistance mechanisms. The disadvantages are as follows: 1. Because bacterial drug resistance mechanisms are diverse and complex, full clinical application would increase the workload, impacting cost-effectiveness and time. 2. In detecting drug resistance genes, genetic heterogeneity necessitates extensive verification work to ensure consistency between gene detection results and phenotypes. 3. Novel drug resistance mechanisms cannot be detected. Sharply discovering novel drug resistance mechanisms is an urgent clinical need. 4. It has not yet been applied clinically and is not yet developed, so further clinical knowledge is needed. Furthermore, practical clinical application requires approval and standardization from experts worldwide.

[0006] Phenotypic drug susceptibility testing directly observes the bacterial response to drugs in vitro. It allows for direct observation of bacterial susceptibility and resistance to antibiotics. Conventional phenotypic drug susceptibility testing has already undergone sufficient development, testing, and validation, and is well supported by clinical practice, serving as a reference standard for AST methods. Unless gene-based nonphenotypic drug susceptibility testing is developed and progresses, such "intermediate technologies," i.e., technologies derived from conventional culture methods, can be implemented much faster and are highly feasible, making them highly promising.

[0007] Furthermore, cell counters are almost always used in drug susceptibility testing. A cell counter generally refers to a device that measures the number of platelets, white blood cells, red blood cells, etc. Fully automated cell counters are widely used, and the Coulter principle analysis method is a globally recognized standard method for measuring cell and particle size, occupying an important position in hematological analysis.

[0008] Conventional bacterial counting devices and methods still have the following problems: 1. Currently, there are no bacterial counting devices on the market that use electrical resistance counting. 2. Conventional cell counting devices use gemstone pores suitable for measuring large cells such as red blood cells and white blood cells, and it is guaranteed that cells pass through the gemstone pores one by one. Because bacteria are small, they cannot pass through the gemstone pores one by one, and since more than two bacteria can pass through the gemstone pores at the same time, the count becomes inaccurate. 3. When measuring red blood cells, white blood cells, etc., if the gemstone pore is less than 50 μm, conventional counting devices will experience clogging of the gemstone pores, so conventional technology limits the pore diameter of the gemstone pore to 50 μm or more. 4. Manual operation is required. Conventional technology allows for easy and accurate measurement of bacterial counts using a microscope, or by obtaining images using staining, projection, or photography and calculating from the magnification. Therefore, it is time-consuming and wastes manpower and resources. For this reason, none of these counting methods have achieved widespread clinical application and adoption. 5. With manual operation, the size and morphology of bacteria vary depending on the species, such as branched, filamentous, spindle-shaped, and chain-shaped, and with some of the above methods, it is difficult to determine the number when many bacteria are overlapping when using conventional techniques.

[0009] Therefore, providing economical and rapid antibiotic susceptibility testing is of particular importance, and designing a rapid, accurate, and convenient automated bacterial counter for bacteria is crucial. [Overview of the Initiative] [Problems that the invention aims to solve]

[0010] The present invention provides a method for detecting the inhibition of antimicrobial agents against bacteria, a bacterial counting device, and a method thereof. At the very least, it aims to solve the technical problem that conventional methods for detecting the inhibition of antimicrobial agents against bacteria take a long time to produce results, preventing physicians from making an appropriate drug selection until the next day. [Means for solving the problem]

[0011] One aspect of the present invention provides a method for detecting the inhibition of an antimicrobial agent against bacteria. This method involves adding a predetermined concentration of antimicrobial agent to the bacteria to be detected to obtain a bacterial-drug mixture, and then detecting bacteria without the antimicrobial agent added. shadow When the interval between the step used as a sex control and the time when the antibacterial agent is added reaches a first predetermined period, the current quantity of the bacteria in the bacterial drug mixture and the shadow A step of obtaining the current quantity of the bacteria of the sex control, and the current quantity of the bacteria in the bacterial drug mixture and shadow The step includes determining, based on a ratio value of the current quantity of the bacteria in a sex control, that the predetermined concentration of the antimicrobial agent inhibits, partially inhibits, or does not inhibit the bacteria.

[0012] Optionally, the current quantity of the bacteria in the bacterial drug mixture and the shadow It is determined that the antimicrobial agent at a predetermined concentration inhibits the bacteria if the ratio of the current quantity of the bacteria in the sex control to the current quantity of the bacteria is equal to a first predetermined threshold.

[0013] The first predetermined threshold is optionally a value between 0 and 0.6.

[0014] The first predetermined threshold is optionally a value between 0 and 0.4.

[0015] Optionally, the current quantity of the bacteria in the bacterial drug mixture and the shadow When the ratio of the current quantity of the bacteria in the sex control to the value of a second predetermined threshold is equal to a second predetermined threshold, it is determined that the predetermined concentration of the antimicrobial agent partially inhibits the bacteria, but does not achieve complete inhibition. When the interval from the time when the antibacterial agent was added reaches a second predetermined period, the second current quantity of the bacteria in the bacterial drug mixture and the shadow A second current quantity of the sex control bacteria is obtained, wherein the second predetermined period is longer than the first predetermined period. The second current quantity of the bacteria in the bacterial drug mixture and the shadowWhen the value of the ratio of the current quantity of the bacteria in the positive control to the second current quantity is equal to the first predetermined threshold value, it is determined that the antibacterial drug at the predetermined concentration inhibits the bacteria.

[0016] Optionally, when the value of the ratio of the current quantity of the bacteria in the bacterial drug mixture to the shadow current quantity of the bacteria in the positive control is greater than a second predetermined threshold value, it is determined that the antibacterial drug at the predetermined concentration does not inhibit the bacteria.

[0017] Optionally, the first predetermined period is any value from 0 to 1.5 hours, and the first predetermined period is not equal to 0 hours.

[0018] Optionally, the second predetermined threshold value is any value from 0.4 to 0.8.

[0019] Optionally, the current quantity of the bacteria in the bacterial drug mixture and the shadow current quantity of the bacteria in the positive control are obtained by an electric resistance counting method.

[0020] Optionally, the method for detecting the inhibition of the antibacterial drug against the bacteria includes, as a detection step, a. Preparation of the bacterial species: Inoculating the bacterial strain into a medium and incubating it at a temperature of 20 degrees Celsius (°C) to 40 degrees Celsius (°C) for 15 hours to 24 hours for storage. b. Preparation of the bacterial drug mixture and the shadow positive control and incubating them at a temperature of 20°C to 40°C. c. When the first predetermined period or the second predetermined period has elapsed, obtaining the current quantity or the second current quantity of the bacteria in the bacterial drug mixture and the shadow current quantity or the second current quantity of the bacteria in the positive control by the electric resistance counting method. d. The current quantity or the second current quantity of the bacteria in the bacterial drug mixture and the shadowWhen the value of the ratio of the current quantity of the bacteria in the negative control or the second current quantity is equal to any value from 0 to 0.4, it includes the step of determining that the antibacterial agent at the predetermined concentration inhibits the bacteria.

[0021] Optionally, in step a, inoculate the bacterial strain into a blood agar medium, incubate at a temperature of 37 degrees Celsius (°C) for 18 hours, and / or In step b, prepare the bacterial drug mixture and the shadow negative control, incubate at a temperature of 37 °C, and / or In step c, the first predetermined period is 0.5 hours or 1 hour or 1.5 hours, and the second predetermined period is 2 hours or 2.5 hours or 3 hours.

[0022] Optionally, use a flow cytometry bacterial counting method or a microscopic bacterial counting method or a counter measurement method or an electronic counter counting method or a viable cell counting method or a cell weight measurement method to obtain the current quantity of the bacteria in the bacterial drug mixture and the shadow current quantity of the bacteria in the negative control.

[0023] In another aspect of the present invention, a bacterial counting device is provided. The bacterial counting device uses a method for detecting the inhibition of an antibacterial agent against the bacteria to obtain the current quantity of the bacteria in the bacterial drug mixture and shadowIt is used to obtain the current quantity of a sex control bacterium. The bacterial counting device includes a sample collection component for obtaining a bacterial sample to be counted, a counting pool component including a gemstone pore, a front pool, a rear pool, and electrodes, wherein the front pool and the rear pool are in communication via the gemstone pore, and each side of the gemstone pore has one of the electrodes, the liquid pressure between the front pool and the rear pool is negative, and the negative pressure causes the bacterial sample to enter the rear pool from the front pool through the gemstone pore, and a circuit control system for determining the quantity of bacteria in the bacterial sample to be counted based on pulse signals when pulse signals generated on both sides of the gemstone pore are detected, wherein the pulse signals indicate that bacteria in the bacterial sample have passed through the gemstone pore.

[0024] Optionally, the circuit control system includes a first processor for detecting the pulse signal, transmitting the pulse signal to a processing unit, and obtaining the quantity of bacteria in the bacterial sample to be counted transmitted from the processing unit, wherein the quantity of bacteria in the bacterial sample to be counted is determined based on bacterial characteristic data represented by the pulse signal, or The system includes a second processor for detecting the pulse signal and determining the number of bacteria in the sample of bacteria to be counted based on the bacterial characteristic data represented by the pulse signal.

[0025] Optionally, the circuit control system is a first power supply circuit for providing a constant current to the gem-made pore by the electrode, wherein the pulse signal is a pulse signal triggered and generated when one or more of the bacteria pass through the gem-made pore when the constant current is provided to the gem-made pore, or A second power supply circuit for providing a constant voltage to the gemstone pore by the electrode, the second power supply circuit comprising a pulse signal which is a pulse signal triggered and generated when one or more of the bacteria pass through the gemstone pore when the constant voltage is provided to the gemstone pore.

[0026] Optionally, the diameter of the gemstone pore is within the first target diameter range, provided that within the first target diameter range, only one bacterium passes through the gemstone pore at a time when bacteria in the bacterial sample to be counted pass through the gemstone pore, or The diameter of the gem-made pore is within the second target diameter range, provided that within the second target diameter range, multiple bacteria in the sample to be counted pass through the gem-made pore at once.

[0027] Optionally, if the diameter of the gem-filled hole is within the first target diameter range, the diameter of the gem-filled hole is 30 μm to 70 μm, and / or the length of the gem-filled hole is 30 μm to 100 μm.

[0028] Optionally, if the diameter of the gem-filled hole is within the first target diameter range, the diameter of the gem-filled hole is 40 μm to 60 μm, and / or the length of the gem-filled hole is 40 μm to 70 μm.

[0029] Optionally, if the diameter of the gem-filled hole is within the first target diameter range, the diameter of the gem-filled hole is 50 μm and / or the length of the gem-filled hole is 50 μm.

[0030] In a further aspect of the present invention, a bacterial counting method is provided. This bacterial counting method is a method for detecting the inhibition of an antimicrobial agent against the bacteria, and the current number of bacteria in a bacterial drug mixture and shadowUsed to obtain the current quantity of sex control bacteria. The bacterial counting method is a step of adding a bacterial sample to a counting pool component, wherein the counting pool component includes a gemstone pore, a front pool, a rear pool, and electrodes, the front pool and the rear pool are in communication through the gemstone pore, the liquid pressure between the front pool and the rear pool is negative, the negative pressure causes the bacterial sample to enter the rear pool from the front pool through the gemstone pore, and the gemstone pore has one electrode on each side, and when the electrodes are turned on, there is a predetermined electrical resistance between the sides of the gemstone pore. A step of detecting whether there is a pulse signal generated by a change in electrical resistance between the two sides of the gem-made pore on both sides of the gem-made pore, wherein the pulse signal indicates that bacteria in the bacterial sample to be counted have passed through the gem-made pore. The method includes the step of obtaining the number of bacteria in the bacterial sample to be counted, which is determined based on the pulse signals, when pulse signals generated on both sides of the gemstone pores are detected.

[0031] The optional step of obtaining the number of bacteria in the bacterial sample to be counted, determined based on the pulse signal, A step of transmitting the pulse signal to a processing device and obtaining the number of bacteria in the sample to be counted transmitted from the processing device, wherein the number of bacteria in the sample to be counted is determined based on bacterial characteristic data represented by the pulse signal, or The step includes determining the number of bacteria in the bacterial sample to be counted based on bacterial characteristic data represented by the pulse signal.

[0032] Optionally, the diameter of the gemstone pore is within the first target diameter range, provided that within the first target diameter range, only one bacterium passes through the gemstone pore at a time when bacteria in the bacterial sample to be counted pass through the gemstone pore, or The diameter of the gem-made pore is within the second target diameter range, provided that within the second target diameter range, multiple bacteria in the sample to be counted pass through the gem-made pore at once.

[0033] Each side of the gemstone pore has one electrode, and the electrodes on both sides of the gemstone pore form a constant current source, and since the bacteria are non-conductive, a voltage pulse signal is generated when the bacteria pass through the gemstone pore, and therefore, according to the proposed technology, the number of bacteria in the sample to be counted can be determined based on the pulse signal, and the "pulse signal" is a "voltage pulse signal".

[0034] The bacterial feature data represented by the pulse signal includes a signal having the bacterial feature data in the pulse signal, which has been amplified and strengthened by an adjustment circuit, noise removed by low-pass filtering, excess amplitude values ​​removed by buffering amplitude limiting, and recognized by algorithms such as pulse recognition, slope recognition, peak detection, trough detection, and broadband detection.

[0035] The phenomenon of the aforementioned gem-made holes becoming clogged (hole blockage) can be divided into complete blockage and partial blockage. In other words, the gem-made holes can either become completely clogged or partially clogged.

[0036] If complete pore clogging occurs, the counting quantity will be abnormal, and correct results cannot be obtained even if counting is performed. Therefore, the backwashing component or the cauterization component is used to resolve the pore clogging phenomenon. If partial pore clogging occurs, data will be displayed, directly affecting the test results, and it will be possible to determine whether partial pore clogging has occurred from the observation counting time. In other words, a reference value is set for the observation counting time, and if the bacterial counting device is operating normally and the micropores are not blocked, the time for aspirating the bacterial sample to be counted is constant. If the counting time becomes long, the detector of the bacterial counting device will indicate that partial pore clogging has occurred. Alternatively, as an optional alternative, if pore clogging occurs, a specific algorithm will be used to determine the quantity exceeding the limit. If the data is determined to be incorrect, it will be determined that pore clogging or external interference has occurred.

[0037] When the device is operating normally, a fixed value for the counting time is already set, and the counting time is uniform. When operating normally, the voltage of the pore is stable within a nearly specific range, and if the voltage of the pore rises or an abnormality occurs in the counting quantity, it indicates that the gemstone pore has become clogged or that impurity interference has occurred. There are various causes of pore clogging, but in many cases, it is caused by the uneven mixing of various bacteria or the accumulation of substances not to be counted due to insufficient cleaning of the gemstone pore.

[0038] Optionally, there is also a method to determine whether pore clogging has occurred based on the voltage interval. That is, the voltage is divided into three stages, each representing normal, elevated, or abnormal. When the voltage rises, it indicates that pore clogging has occurred in the detector of the bacterial counter. Elevation indicates minor pore clogging (partial pore clogging), abnormal indicates complete pore clogging, and normal indicates a state without pore clogging. When an elevation in the voltage of a small pore or an abnormality in the counting quantity occurs, or when a baseline abnormality is determined, it indicates that the gemstone pore is clogged or contains impurities or interference.

[0039] Under normal circumstances, the intermediate liquid port of the rear pool is under negative pressure, and the rear pool has three channels. The upper and lower two channels communicate with the diluent via valves, and the liquid passing through them is called uncontaminated liquid. The intermediate port is directly connected to a valve and then to a pump, after which it is discharged as waste liquid. An electrode is also provided at the intermediate port (this electrode is an external electrode made of stainless steel, while the internal electrode in the front pool is made of platinum). Under normal circumstances, the intermediate liquid is under negative pressure, ensuring that the bacterial sample liquid to be counted enters the rear pool from the front pool, and counting is completed as it passes through the gemstone pores. After the counting of the bacterial sample to be counted is complete, the rear pool is cleaned by introducing the liquid into the liquid inlets at the upper and lower ends of the rear pool and allowing it to flow out from the liquid outlet at the other end of the rear pool. For example, the rear pool is cleaned by introducing the liquid into the liquid inlet and outlet of the rear pool and allowing it to flow out. For example, in a system where liquid enters and exits, the liquid entering the rear pool is the diluent, and the liquid exiting is waste liquid, which may contain both the sample and the diluent. The upper and lower channels are connected to each other and divided into two parts: part 1 is the main channel communicating with the diluent, and part 2 is connected to the upper and lower channel ports of the rear pool, and the intermediate channel, i.e., the channel containing the electrodes.

[0040] If the holes become clogged, the negative pressure is released at the intermediate liquid port of the rear pool. One selectable method is to first apply positive pressure using a pressure pump to create pressure in the rear pool, backwash the gemstone holes, and resolve the phenomenon of complete or partial clogging of the gemstone holes. Another selectable method is to supply liquid from the two liquid ports, upper and lower, of the rear pool to create pressure in the rear pool, backwash the gemstone holes, and resolve the phenomenon of complete or partial clogging of the gemstone holes.

[0041] Furthermore, the counting pool component optionally includes a backwashing component for clearing blockages in the gemstone pores by backwashing if the pores become clogged. Additionally, pressure is generated in the rear pool by eliminating the negative pressure of the liquid in the rear pool and supplying liquid from the two liquid ports of the rear pool, thereby backwashing the gemstone pores and clearing the blockages. Alternatively, positive pressure is generated in the rear pool by applying a pressure pump, thereby backwashing the gemstone pores and clearing the blockages.

[0042] Furthermore, the counting pool component optionally includes a cauterization component for resolving blockages in the gemstone pores by cauterization when such blockages occur.

[0043] Furthermore, the cauterizing component is used to melt the material clogging the gemstone pores by applying a voltage higher than a predetermined voltage value to the gemstone pores using the electrodes when the pores become clogged.

[0044] When the computer connected to the bacterial counting device detects a clogged pore, i.e., an alarm or warning message from the computer, the blockage can be cleared by manually performing high-pressure cauterization. This is done by manually clicking an operation button on the computer (PC side) to turn on the high-pressure cauterization circuit. In other words, during normal counting, a DC voltage (relatively low-pressure portion) is used, and during cauterization, a high-pressure DC voltage is used. Cauterization is a rapid switching between high and low pressure. High-frequency waves are generated during the high-pressure cauterization process, and at the moment of on / off, arc discharge occurs on both sides of the gemstone pore, and the generated electric sparks cauterize the substance clogging the gemstone pore. Another optional method for clearing clogged pores by cauterization is to provide a stable low-pressure component by a switch circuit during normal counting and use a high-pressure DC voltage during cauterization. During cauterization, the test liquid is heated to boiling under high pressure, melting the protein components and clearing the clogged pores.

[0045] Furthermore, the predetermined voltage value is between 90V and 110V. Furthermore, the predetermined voltage value is 110V. Furthermore, the front pool is made of plastic material. Furthermore, the front pool is made of polyoxymethylene material. Furthermore, the rear pool is made of plastic material. Furthermore, the rear pool is made of polyoxymethylene material. Plastic materials, particularly polyoxymethylene materials, offer excellent processing performance, making it easier to ensure the correct size for the front and rear pools, and resulting in a more stable structure. [Effects of the Invention]

[0046] The most remarkable beneficial effect of the method for detecting the inhibition of antimicrobial agents against bacteria according to the embodiments of the present invention is as follows: (1) Improvement in reporting time. After obtaining a pure culture, a report can be obtained within 1-2 hours. (2) Improved practicality. The most significant advantage is that, considering the workflow and working hours of daily operations, when combined with rapid bacterial identification (completed within 1-2 hours), targeted antibiotic therapy can be achieved on the same day that a pure bacterial culture is obtained. This leads not only to a reduction in patient mortality and medical costs, but also to a reduction in the development of bacterial drug resistance. (3) The technology is growing, stable, and reliable in terms of results. (4) In principle, it is similar to the internationally standardized method (drug susceptibility testing using the broth dilution method) and has high clinical applicability. (5) It is inexpensive. (6) It is easy to automate.

[0047] The bacterial counting apparatus and method according to the technical solution of the embodiments of the present invention have the following beneficial effects.

[0048] The embodiment of the present invention achieves automation in the use of a bacterial counting device using the electrical resistance counting method, solving the problem of conventional bacterial counting being time-consuming and inefficient, and realizing rapid and accurate bacterial counting.

[0049] The improved gemstone pores in the embodiments of the present invention ensure that bacteria pass through the micropores one by one, avoiding the effect of overlapping that could affect bacterial counting, and enabling accurate and efficient bacterial counting using the electrical resistance counting method. The addition of high-pressure backwashing and cauterization functions prevents pore clogging. If pore clogging occurs, a high-pressure backwashing design is added in the rear pool section to resolve the phenomenon of complete or partial clogging of the gemstone pores. If high-pressure backwashing is ineffective, the cauterization function can be selected to resolve pore clogging, meaning that when the pore diameter is reduced, the phenomenon of complete or partial clogging of the gemstone pores is less likely to occur.

[0050] By accurately designing the bacterial counting signal adjustment circuit and adding it to filter out non-bacterial signals, false positives are reduced as bacterial characteristic signals are accurately recognized. [Brief explanation of the drawing]

[0051] The drawings, which form part of this application, are provided for further understanding of the present invention, and the schematic embodiments and descriptions thereof are for interpretive purposes and do not constitute an inappropriate limitation of the present invention. In the drawings, [Figure 1] Figure 1 schematically shows an overall diagram of a bacterial counting device according to an embodiment of the present invention. [Figure 1-1] Figure 1-1 schematically shows a schematic diagram of the process by which the entire bacterial counting device according to an embodiment of the present invention moves to aspirate a sample. [Figure 1-2] Figure 1-2 schematically shows the entire bacterial counting apparatus according to an embodiment of the present invention, in which the sample to be aspirated is added to the counting pool component. [Figure 2]Figure 2 schematically shows a schematic diagram of the counting pool component according to an embodiment of the present invention. [Figure 2-1] Figure 2-1 schematically shows a symmetrical cross-sectional schematic diagram of a part of Figure 2 according to an embodiment of the present invention. [Figure 2-2] Figure 2-2 schematically shows a cross-sectional schematic diagram of a gemstone with a small hole according to an embodiment of the present invention. [Figure 3] Figure 3 schematically shows a schematic diagram of the sample collection component according to an embodiment of the present invention. [Figure 3-1] Figure 3-1 schematically shows a cross-sectional structure of a sample collection needle and cotton swab combination according to an embodiment of the present invention. [Figure 3-2] Figure 3-2 schematically shows a schematic diagram of the reagent plate according to an embodiment of the present invention. [Figure 4] Figure 4 schematically shows a schematic diagram of the operating principle of an electrical resistance counter according to an embodiment of the present invention. [Figure 4-1] Figure 4-1 schematically shows a schematic diagram of the operating principle represented by the flow path of a bacterial counting device according to an embodiment of the present invention. [Figure 5] Figure 5 schematically shows a schematic diagram of the process related to the signal adjustment circuit according to an embodiment of the present invention. [Figure 6] Figure 6 is a schematic diagram showing the change in bacterial mass in Escherichia coli cultured in broth at arbitrarily selected different time intervals according to an embodiment of the present invention. [Figure 7] Figure 7 is a schematic diagram of the turbidity change in Escherichia coli cultured in broth at arbitrarily selected different time intervals according to an embodiment of the present invention. [Figure 8] Figure 8 is a schematic diagram showing the results of observing changes in turbidity and bacterial count in an optional broth bacterial culture according to an embodiment of the present invention. [Figure 9] Figure 9 is a schematic diagram of the results of a propagation experiment according to Example 3 of the present invention. [Figure 10] Figure 10 is a schematic diagram showing the results of a comparison between 2 hours and 24 hours according to Example 3 of the present invention. [Figure 11] Figure 11 is a schematic diagram showing the results of the susceptibility agreement rate according to Example 3 of the present invention. [Modes for carrying out the invention]

[0052] Furthermore, unless there is a contradiction, the embodiments or features relating to the embodiments of this application can be combined with each other. The present invention will be described in detail below with reference to the drawings and in conjunction with embodiments.

[0053] The present invention's drug susceptibility test (method for detecting the inhibition of antimicrobial agents against bacteria) substantially observes the effects of antibiotics on bacterial growth, metabolism, and reproduction, and predicts the efficacy of a drug by linking the observed effects of the drug on bacterial growth, metabolism, and reproduction (inhibition status against bacteria) with clinical and pharmacokinetic data. Conventional methods monitor the killing effect of antibiotics against bacteria by observing changes in the number of bacteria in liquid or solid culture media, and the observation is of the bacterial population. If the accurate quantity of individual bacteria could be monitored, rather than detecting the trend of changes in the total number of bacteria in the bacterial population, the effects of drugs on bacteria could be detected early and rapidly, and the time required for drug susceptibility testing would be greatly improved. However, conventional technology does not have an accurate, practical, and automatable microscopic detection technique for individual bacteria. Therefore, the technical solution of the present invention is a novel method for rapidly detecting drug susceptibility of bacteria by bacterial counting, from a different angle.

[0054] Specifically, one technical solution of this invention involves novelly applying the electrical resistance counting method (Coulter principle), which is the most rapidly growing, reliable, rapid, and economical method for human blood cell counting, to a method for detecting the inhibition of antibiotics against bacteria. This enables rapid detection of antibiotic susceptibility. When different concentrations of antibiotics are added during bacterial growth, it is found that antibiotics above a certain concentration inhibit bacterial growth and reproduction, allowing for the measurement of the minimum inhibitory concentration (MDI). Conventional methods measure the MDI by measuring the change in turbidity of the broth after bacterial growth, which usually takes a considerable amount of time, typically 18 hours. In recent years, several manufacturers have attempted to optimize their methods to detect bacterial growth or inhibition earlier by using more sensitive turbidimeters or by adding redox indicators, but even these methods still required 10 hours to obtain a report. Since the effects of antibiotics appear quickly after contact with bacteria, finding the fastest method or technical solution to determine the action and effects of drugs on bacteria is of extremely practical significance, as it allows for the measurement of bacterial susceptibility to drugs in a very short time. This invention allows for the quantitative counting of bacterial cells in a short time using an electrical resistance counting method, enabling rapid measurement of susceptibility to antimicrobial agents. By analyzing and comparing changes in bacterial quantity, the inhibitory effect of antibiotics on bacteria can be determined, and susceptibility to antimicrobial agents can be rapidly measured. This method is particularly suitable for rapid drug susceptibility testing, and the results are stable and reliable.

[0055] In a specific embodiment of the present invention, a bacterial counting device is provided. The bacterial counting device is a method for detecting the inhibition of an antimicrobial agent against bacteria, and the current number of bacteria in a bacterial drug mixture and shadowIt is used to obtain the current quantity of bacteria for sex control. This is a bacterial counter that measures the number of bacteria using the electrical resistance counting method, and therefore, it is necessary to first invent a bacterial counter that measures the number of bacteria using the electrical resistance counting method. In other words, a sample collection component, a counting pool component, and a circuit control system are designed and combined to obtain the entire bacterial counter that measures the number of bacteria using the electrical resistance counting method. Furthermore, the pore size of the gemstone pores in conventional bacterial counters is suitable for measuring large cells such as red blood cells and white blood cells. Therefore, the technical solution of the present invention is to improve the pore diameter of the gemstone pores according to the size of the bacteria, by adjusting the pore diameter of the gemstone pores, so that when bacteria in the bacterial sample to be counted pass through the gemstone pores, one or more bacteria pass through the gemstone pores at a time, and in the event of a clogging of the gemstone pores, a backwashing component is used to clear the clogging of the gemstone pores by backwashing, or a cauterization component is used to clear the clogging of the gemstone pores by cauterization.

[0056] Exemplary device: As shown in the schematic diagram of the entire bacterial counting device in Figure 1, the bacterial counting device includes a counting pool component 1, a sample collection component 2, a signal adjustment circuit 3, and a housing 4. The counting pool component 1 is fixedly connected to the sample collection component 2. The signal adjustment circuit 3 is as shown in Figure 5, and the signal adjustment circuit 3 is installed below the rail 41 shown in Figure 1-2, i.e., installed inside the bacterial counting device. The signal adjustment circuit 3 is connected to the internal electrode 141 and external electrode 142 in the counting pool component 1. The signal adjustment circuit 3 includes a signal acquisition board, a main control board, etc. The housing 4 is located outside the counting pool component 1, the sample collection component 2, and the signal adjustment circuit 3. The sample collection component 2 includes a motion mechanism, which collects the bacterial sample fluid and places it into the counting pool component 1. The counting pool component 1 slides along the rail 41, accompanied by the sample collection component 2.

[0057] As shown in the schematic structural diagram of the counting pool component 1 in Figure 2, and as shown in the schematic cross-sectional structural diagram of a part of the counting pool component 1 in Figure 2-1, the counting pool component 1 includes a gemstone hole 11, a front pool 12, a rear pool 13, and internal electrodes 141 and external electrodes 142 that connect the front pool and the rear pool. The gemstone hole 11 is located between the front pool 12 and the rear pool 13. The internal electrodes 141 and the external electrodes 142 are connected between the front pool 12 and the rear pool 13.

[0058] As shown in Figure 2-1, the rear pool 13 includes an upper liquid port 131, an intermediate liquid port 132, and a lower liquid port 133. The liquid in the rear pool 13 is under negative pressure. This ensures that all of the bacterial test solution entering the front pool 12 flows through the gemstone pores 11 and enters the rear pool 13 completely. The effect is most pronounced when the intermediate liquid port 132 of the rear pool 13 is under negative pressure. The upper liquid port 131 and the lower liquid port 133 in the rear pool 13 are two wash ports. The wire of the external electrode 142 is twisted to the outer metal wall of the intermediate liquid port 132. Optionally, the internal electrode 141 is made of platinum and is used to count bacteria in the bacterial sample. During detection, the test solution sample passes through the micropores of the gemstone pores, and the electrodes in the front pool and rear pool detect the change in electrical resistance, generating a pulse signal in the circuit. The number of bacteria is measured based on the number of pulses.

[0059] The intensity of the measurement signals from the internal electrode 141 and the external electrode 142 acts as a sensor for counting bacteria. Because the diluent is conductive, when a specific voltage is applied between the two electrodes, there is a constant electrical resistance between the micropores of the gemstone-made pores 11. Since cells are non-conductive, when cells enter the pores, the change in electrical resistance between the pores generates a pulse signal in the circuit. The pulse signal is processed and transmitted to a PC for analysis, and parameters such as the number and size of cells can be obtained from characteristics such as the number of pulses and pulse amplitude, and statistics can be performed. As shown in the operating principle diagram of Figure 4, the number of bacteria in the bacterial test solution is obtained by counting the electrical resistance of the bacterial counting device and transmitted to the PC (personal computer).

[0060] Figure 3 is a schematic diagram of the sample collection component 2. As shown in Figures 1, 1-1, and 3, the sample collection component 2 includes a three-dimensionally movable mechanical arm, a sample collection needle 22, a cotton swab 23, a reagent plate 24, a plunger pump 25, and the like. The motion mechanism in the sample collection component 2 includes the mechanical arm and the sample collection needle 22. The mechanical arm includes a mechanical arm 21-1 that moves along the X axis, a mechanical arm 21-2 that moves along the Y axis, and a mechanical arm 21-3 that moves along the Z axis. One end of the sample collection needle 22 passes through the cotton swab 23. Figure 3-1 is a partial cross-sectional view relating to a schematic diagram of the combination of the sample collection needle 22 and the cotton swab 23. When washing, water enters from the water supply pipe 231 and exits from the water outlet pipe 232. The other end of the sample collection needle 22 is fixedly connected to the mechanical arm 21-2. By moving in accordance with the movement of the mechanical arm 21-2, the desired sample collection function is achieved, namely, the sample collection needle 22 collects the bacterial test fluid from the reagent plate 24. As shown in Figure 1-1, the plunger pump 25 is connected to the sample collection needle 22, and the plunger pump 25 controls the aspiration and discharge of the bacterial test fluid by the sample collection needle 22. Two of the sample collection needles 22 are fixed to a support frame of a three-dimensionally moving mechanical arm, and each of the sample collection needles 22 has one of the cotton swabs 23, and there may be four of the sample collection needles 22.

[0061] Furthermore, the multiple probes can remain relatively stationary or move individually.

[0062] As shown in the schematic diagram of the signal adjustment circuit 3 in Figure 5, it is a signal adjustment circuit on a signal processing board that collects minute signals and then uploads the number of bacteria after amplification filtering, signal acquisition, etc.

[0063] As shown in the schematic diagrams of the operation process of the sample collection component of the bacterial counting device in Figures 1, 1-1, and 1-2, when the bacterial counting device is in operation, the sample collection component 2 moves rapidly to a predetermined position. The plunger pump 25 controls the initial homogeneous mixing of the bacterial test solution in the reagent plate 24 and the aspiration of the bacterial test solution sample by the sample collection needle 22. Subsequently, the bacterial test solution is discharged into the front pool 12 of the counting pool component 1, which moves in accordance with the sample collection component 2.

[0064] Optionally, as shown in the schematic structural diagram of the gemstone pore 11 in Figure 2-2, the pore diameter 111 (diameter of the gemstone pore) of the gemstone pore 11 is set to a range of 30 μm to 70 μm, preferably 40 μm to 60 μm, so as to take into consideration both the bacterial test signal intensity and counting time. The length 112 of the gemstone pore 11 is set to 30 μm to 100 μm, preferably 40 μm to 70 μm. When the pore diameter 111 of the gemstone pore is 50 μm and the length 112 of the gemstone pore is 50 μm, it is optimal for bacterial measurement. If the pore of the gemstone pore 11 becomes clogged, the high-pressure backwashing design added to the rear pool 13 can resolve the pore clogging phenomenon.

[0065] The following is the test effect data obtained by using this design to perform resistance counts on the same reference bacterial suspension (standard bacterial count is approximately 2500 cells / mL) with different pore sizes made of gemstones.

[0066] 1) When the length of the gemstone pores is set to 50 μm, a comparison of the bacterial count per 1 mL (after conversion) data measured with different pore sizes is shown in Table 1.

[0067] [Table 1]

[0068] As revealed by the analysis, when the pore diameter of the gemstone-made pores was too small, pore clogging occurred, reducing the number of particles that could be measured. Conversely, the larger the pore diameter of the gemstone-made pores, the more particles passed through in the same amount of time, leading to inaccurate counting and a reduction in the number of particles that could be measured. As can be seen from Table 1 above, the optimal pore diameter 111 for the gemstone-made pores is 50 μm, and the test effect data for electrical resistance measurement is best at this size.

[0069] 2) When the pore size of the gemstone pores is set to 50 μm, a comparison of the bacterial count per 1 mL (after conversion) data measured with different gemstone pore lengths is shown in Table 2.

[0070] [Table 2]

[0071] As the analysis revealed, when the pore diameter of the gemstone pore remained constant, the longer the gemstone pore, the more particles passed through in the same amount of time, leading to inaccurate counting and a reduction in the number of particles measured. If the length of the gemstone pore was too short, the flow velocity was extremely high, resulting in many particles not being detected and thus a reduction in the number of particles measured. As can be seen from Table 2 above, the optimal length for the gemstone pore was 50 μm, and the test effect data for electrical resistance measurement was best.

[0072] As can be seen from Table 2 above, the best result for the test effect data of the electrical resistance meter is when the pore diameter 111 of the gemstone pore is 50 μm and the length 112 of the gemstone pore is 50 μm. If the pore diameter and length of the gemstone pore are in other ranges, the counting effect is inferior to that of 50 μm, but counting is still possible. The inaccuracy of the count is relative. In other words, the same counting standard is correct for judging the trend of bacterial counts in different bacterial suspensions. For this reason, even if the length and pore diameter of the gemstone pore are other specifications, the unit level of bacterial count can be measured.

[0073] Specifically, the high-pressure backwash design involves eliminating the negative pressure at the intermediate liquid port 132 of the rear pool 13 and supplying liquid from the upper liquid port 131 and lower liquid port 133 of the rear pool 13 to generate pressure in the rear pool 13, backwashing the gemstone pores 11 and preventing the phenomenon of the gemstone pores 11 being completely or partially clogged. If high-pressure backwashing is ineffective, the cauterization function can be selected to resolve the pore clogging. In other words, when the pore diameter is reduced, the phenomenon of the gemstone pores being completely or partially clogged is less likely to occur.

[0074] Optionally, as shown in Figure 2, the front pool 12 has a structure in which four channels are integrated, and is made of polyoxymethylene material or other plastic material, the distance between the two front pool channel ports 121 of the front pool 12 is 18 mm, and the liquid volume inside the front pool 12 is greater than 2.5 mL. By using polyoxymethylene material or other plastic material, the accuracy of the size of the front pool 12 and the rear pool 13 is easier to ensure, and the structure is more stable.

[0075] For example, bacterial counting may become inaccurate if the gemstone pores become clogged as bacteria pass through them. To solve the problem of inaccurate bacterial counting due to clogged gemstone pores, embodiments of the present invention further provide technical solutions for detecting and clearing clogged gemstone pores. As shown in the optional overall view of Figure 1-1, a plunger pump for clearing pore blockages by high-pressure backwashing is provided on the side of the bacterial counting device, and / or a high-frequency counting voltage is applied to electrodes at both ends of the pores for clearing pore blockages by high-pressure cauterization. For details of the operation, refer to the exemplary method.

[0076] Example method: Optionally, a platinum electrode is placed on each side of a gemstone-shaped pore formed by a laser. Because the diluent is conductive, a constant electrical resistance exists between the micropores when a specific voltage is applied between the two electrodes. Since cells are non-conductive, when cells enter the pores, the change in electrical resistance between the pores generates a pulse signal in the circuit. The pulse signal is processed and transmitted to a PC for analysis, and parameters such as the number and size of cells can be obtained from characteristics such as the number of pulses and pulse amplitude, and statistics can be performed.

[0077] The bacterial counting signal adjustment circuit and acquisition algorithm are precisely designed to fully preserve the valid signal through signal amplification, and adjust the gain to the magnification ratio that best suits the algorithm's recognition. High-frequency noise is removed by low-pass filtering, and amplitude values ​​exceeding the limit are removed by buffering amplitude limiting. By accurately recognizing bacterial characteristic signals using algorithms such as pulse recognition, slope recognition, peak detection, trough detection, and broadband detection, the bacterial quantity is obtained from the pulse signal.

[0078] If the pulse signal includes several pulse signals of a first type, the circuit control system or processing device determines the number of the several pulse signals of the first type as a first quantity. Each pulse signal in the several pulse signals of the first type is a pulse signal generated when one of the bacteria passes through the gem-like pore. If the pulse signal includes several pulse signals of a second type, the circuit control system or processing device determines the product of the number of the several pulse signals of the second type and a predetermined quantity as a second quantity. Each pulse signal in the several pulse signals of the second type is a pulse signal generated when the predetermined quantity of the bacteria simultaneously passes through the gem-like pore.

[0079] If the pulse signal includes only some pulse signals of the first type, the number of bacteria in the bacterial sample to be counted is determined to be the first number. If the pulse signal includes only some pulse signals of the second type, the number of bacteria in the bacterial sample to be counted is determined to be the second number. If the pulse signal includes some pulse signals of the first type and some pulse signals of the second type, the number of bacteria in the bacterial sample to be counted is determined to be the sum of the first number and the second number.

[0080] As an example, the circuit control system or processing apparatus according to an embodiment of the present invention can determine whether the pulse signal includes several pulse signals of a second type in the following steps.

[0081] If only one bacterium can pass through, the count is accurate. If two or three bacteria pass through the gem-like pore simultaneously, generating a second type of pulse signal, and the second type of pulse signal is within the error range of the first type of pulse signal, it is recorded as a valid count; otherwise, an error is reported and recounting is performed or the count result is converted from the error value.

[0082] For example, during the process of bacteria passing through gemstone pores, the pores may become clogged, potentially leading to inaccurate bacterial counting. To address the problem of inaccurate bacterial counting due to clogged gemstone pores, embodiments of the present invention further provide technical solutions for detecting and resolving clogging of gemstone pores.

[0083] As an exemplary technique for detecting clogging of gem-filled pores, embodiments of the present invention further include: determining that the gem-filled pore is clogged when it is detected that the voltage between the front pool and the rear pool exceeds a predetermined threshold; the front pool is the anode and the rear pool is the cathode; the more the gem-filled pore becomes, the greater the electrical resistance between the two sides of the gem-filled pore and the greater the voltage between the front pool and the rear pool. The predetermined threshold may be set based on different measurement requirements for bacterial quantities (e.g., different measurement accuracies).

[0084] Regarding the technical proposal for resolving clogged holes through backwashing, the embodiment of the present invention further includes the following as an exemplary technical proposal for resolving clogged small holes in gemstones.

[0085] Regarding the technical proposal for cauterizing blockages in gemstones, an embodiment of the present invention further includes high-pressure backwashing and high-pressure cauterization as an exemplary technical proposal for clearing blockages in gemstone pores.

[0086] If a blockage occurs, the intermediate section faces the location of the gemstone-made small hole, and the positive pressure forces backwash liquid into the intermediate wash port, which is then discharged from the two wash ports, upper and lower. A plunger pump and valve combination controls the process, applying positive pressure to the rear pool through the upper and lower liquid ports, causing the waste liquid to be discharged from the waste liquid port in the front pool. The waste liquid is extracted by a combination of a solenoid valve and waste liquid pump.

[0087] During the cauterization process, a high-frequency counting voltage is applied to the electrodes at both ends of the pore under a voltage of 110V. In normal counting, the counting voltage is a continuously supplied DC voltage. In high-pressure cauterization, high-frequency current is generated by designing it as an on / off switch at short intervals. At the moment of on / off, an arc discharge is generated between the two electrodes, and an electric spark is emitted from the pore. In this way, proteins and debris are easily removed. There are also devices designed for standalone AC power supply, controlled by a relay or silicon-controlled rectifier at the front end of the electrode line. Optionally, the proteins can be heated and melted by high-pressure boiling to eliminate pore clogging caused by cauterization.

[0088] Optionally, a multi-probe system is installed. This novel probe structure allows two probes to move simultaneously, achieving the effect of having four probes while reducing costs. As shown in Figure 3, the distance between the two sample collection needles 22 is 18 mm. When this design is used for bacterial counting, a three-dimensionally moving mechanical arm carries two stainless steel sample collection probes to a target plate, aspirates the sample, and discharges the test fluid into two of the four counting pools. At this time, the two counting pool channels begin to operate. Subsequently, the three-dimensionally moving mechanical arm carries the two stainless steel sample collection probes back to the target plate, aspirates the sample, and discharges the test fluid into the other two counting pools, at which point these two counting pool channels begin to operate. Once detection in the channels is complete, the sample is aspirated again, and the same operation is repeated. By having two probes (the sample collection needles 22) move simultaneously and performing multi-channel detection, waiting times are reduced, and costs associated with adding probe components are saved.

[0089] Optionally, the three-dimensional arm can move together with the counting pool to shorten the time from sample suction to sample delivery.

[0090] The three-dimensional arm moves together with the counting pool and remains relatively stationary. During detection, after aspirating the sample, the three-dimensional arm moves along the X, Y, and Z axes to inject the sample into the counting pool, eliminating the need for any further three-dimensional movement.

[0091] Optionally, as shown in Figure 3, the spacing between the sample collection needles 22 is 18 mm. Figure 3-2 is a schematic diagram of the reagent plate 24. The spacing between the two test wells 241 of the reagent plate 24 is 9 mm. Since the spacing between the two sample collection needles 22 is exactly twice the spacing between the test wells of the reagent plate, the stroke is shorter and time is saved. A longer spacing would increase the movement stroke and operating time, thus avoiding a decrease in efficiency.

[0092] Optionally, as shown in Figure 4, after the sample injection needle injects liquid into the front pool, negative pressure carries the liquid from the front pool to the rear pool, where it passes through gem-like pores. When bacteria pass through the gem-like pores, a voltage is generated, creating a pulse signal (a constant current source is provided, and as bacteria pass through, the electrical resistance changes, and the voltage changes). After filtering and amplification by the circuit, and further filtering, the signal reaches a one-chip microcomputer. The one-chip microcomputer performs the AD sample collection process, and its program is programmed with a pulse recognition algorithm. After processing, the signal is transmitted to PC software. The processing signal process is as follows: AD sample collection collects a sample at a unit level of approximately 10M, which is then processed by the algorithm to obtain a small amount of K. This small amount of K includes the total number and histogram information. This data is then uploaded to the PC.

[0093] Optionally, as shown in the flow path diagram in Figure 4-1, which represents the schematic operation of the bacterial counter as a liquid flow, the bacterial counter is a bacterial counter with four counting channels. Since the flow paths of each channel are the same, the operating principle will be explained using two of them, channels 1 and 2 (CH1 and CH2), as examples. As shown in the flow path diagram in Figure 4-1, the counting pool component 1 is washed before each count, prior to sample injection and counting. The diluent (test bacterial reagent) is drawn up by a combination of the V1 solenoid valve and a 10 mL pump, and then the liquid is injected into the front pool 12 by a combination of the V1, V2, V3, and V4 solenoid valves and a pump. Then, the gemstone pores 11 are flushed out by a combination of the 10 mL pump and the V1, V2, and V3 solenoid valves by applying positive pressure to the flow path. Then, the waste liquid from the front pool 12 is completely discharged by the V8, V9, and P1 solenoid valves and a pump, and the waste liquid from the rear pool 13 is discharged by the P3 pump and the V6 and V7 solenoid valves. The sample injection counting process is as follows: Liquid is added to the front pool 12, and then the diluent is added and diluted by a combination of solenoid valves and a pump, causing the cotton swab 23 to stand up. The washing process with the cotton swab 23 is as follows: The sample collection needle 22 rises, its lower surface is enveloped by the cotton swab 23, and the combination of the V5 solenoid valve and the P1 pump causes the diluent that has washed the outer wall of the sample collection needle 22 from the V4 solenoid valve channel to be discharged into the wastewater pool. Subsequently, the combination of the V5 solenoid valve and the P1 pump causes the diluent that has washed the inner wall of the sample collection needle 22 from the V4 solenoid valve channel to be discharged into the wastewater pool. The V4 solenoid valve is three-way, with one inlet and two outlets, and at least one of the two outlets (referred to as 1 and 2) communicates with the inlet at the same time, so that the washing of the inner and outer walls of the sample collection needle 22 by the diluent can be controlled, and once washing is complete, the sample liquid is aspirated.In the two channels into which the sample was previously injected, counting for a set period of time is initiated by the negative pressure from the V6 solenoid valve and the P3 pump. After a predetermined time, the front pool 12 and the rear pool 13 are cleaned by the respective solenoid valve and pump combinations in preparation for the next sample intake.

[0094] Although several units / modules or subunits / modules of the device are described in detail above, such configurations are not limiting but merely illustrative. In practice, based on embodiments of the present invention, the features and functions of two or more units / modules described above may be realized in a single unit / module. Alternatively, the features and functions of a single unit / module described above may be realized by dividing them among multiple units / modules.

[0095] Although the drawings illustrate the operations of the method of the present invention in a specific order, this does not imply that these operations must be performed in that specific order, or that the desired results cannot be obtained unless all of the operations are performed. Furthermore, or optionally, some steps may be omitted, multiple steps may be combined into a single step, and / or a single step may be divided into multiple steps. [Examples]

[0096] The beneficial effects of the method for detecting the inhibition of antimicrobial agents against bacteria according to the present invention will be further explained below in conjunction with specific examples.

[0097] (Example 1) Objective: To identify highly sensitive indicators of bacterial changes during bacterial broth culture, provide a theoretical basis for rapid drug susceptibility testing, and establish a method for detecting bacterial drug susceptibility.

[0098] Materials and methods: 1. Bacterial species preparation Three standard bacterial strains (ATCC25922 Escherichia coli, ATCC25923 Staphylococcus aureus, and ATCC27853 Pseudomonas aeruginosa) were subcultured and stored, then incubated at 37°C for 18 hours.

[0099] 2. Broth preparation The AST (antibiotic susceptibility test) broth was prepared by grinding the pre-prepared bacterial strains against the wall of the bottle, mixing them uniformly, sealing the bottle, and measuring the turbidity using a turbidimeter (BD PhoenixSpec Nephelomter). The turbidity was measured in 0.5 McFarland units. The test bacteria were inoculated at the inoculum concentrations described in the broth dilution method antibiotic susceptibility test by CLSI (American Clinical Laboratory Standards Institute), left to stand at 37°C, and incubated in an incubator.

[0100] 3. Bacterial counting The cells were incubated in an incubator at 37°C, and cell counting was performed using the electrical resistance counting method (RC-3000 resistance counting (Coulter) particle counter, manufactured by Zhuhai Oumeike Co., Ltd.) at 0 minutes, 10 minutes, 30 minutes, 60 minutes, 90 minutes, and 120 minutes. The average value was calculated from two measurements, and the data was recorded.

[0101] 4. Turbidity measurement The samples were incubated in an incubator at 37°C, and turbidity was measured twice using a turbidimeter (BD PhoenixSpec Nephelomter) at 0, 10, 30, 60, 90, and 120 minutes. The average value was calculated, and the data was recorded. The results are shown in Table 3.

[0102] [Table 3]

[0103] The changes in bacterial load in E. coli broth cultures at different time points are shown in Figure 6.

[0104] The changes in turbidity in E. coli broth cultures at different time points are shown in Figure 7.

[0105] Conclusion: 1. When culturing bacterial broth, there are significant differences in bacterial changes observed using different methods. The currently commonly used method of comparing the turbidity of population bacterial growth has poor sensitivity, and differences cannot be measured even after 120 minutes. 2. The bacterial counting method allows for the measurement of significant differences in a 30-minute broth culture, thus supporting the feasibility of a bacterial drug susceptibility detection method.

[0106] (Example 2) Method for detecting the inhibition of ampicillin against Escherichia coli ATCC25922 (electrical resistance counting method):

[0107] Materials and methods: 1. Bacterial species preparation E. coli strain ATCC25922 was subcultured and stored as a standard strain, and incubated at 37°C for 18 hours.

[0108] 2. Broth preparation Ten of the drug susceptibility test tubes (or beakers) contained the specified antibiotics at a 2:1 dilution (refer to US CLSI standards for the concentration of each drug). The eleventh test tube did not contain the antibiotic. shadow Sex contrast ( N C) was chosen. The 12th bottle, which did not contain a bacterial suspension, was Yang Sex contrast ( P C) was chosen.

[0109] The prepared bacterial strains were rubbed against the wall of a bottle containing MH (antibiotic susceptible) broth, mixed uniformly, and then the bottle was sealed. The turbidity was measured using a turbidimeter (BD PhoenixSpec Nephelomter) and the sample was stored. Turbidity is measured in 0.5 MacFarland units.

[0110] The test bacteria were inoculated at the inoculation concentrations specified in the broth dilution method for drug susceptibility testing by CLSI (Clinical Laboratory Standards Institute), and incubated at 37°C in an incubator.

[0111] Bacterial suspension preparation: Bacterial suspensions were prepared by picking colonies from storage. The concentration of the bacterial suspension was 0.5 McFarland units. After adding the colony suspension to (MH) broth containing various concentrations of antibiotics and inoculating each tube, the bacterial content ranged from 1 × 10^4 cfu / ml to 5 × 10^7 cfu / ml, with 5 × 10^6 cfu / ml (colony-forming units / mL) being optimal, i.e., 5 × 10^6 colony-forming units per mL being the optimal value.

[0112] 3. Electrical Resistance Counting Method (Coulter Principle) The cells were incubated in an incubator at 37°C, and cell counting was performed at 0, 10, 30, 60, 90, and 120 minutes using the electrical resistance counting method (RC-3000 resistance counting (Coulter) particle counter, manufactured by Zhuhai Oumeike). The average value was calculated from two measurements, and the data was recorded.

[0113] The changes in bacterial quantity in the ampicillin rapid drug susceptibility test for Escherichia coli ATCC25922 are shown in Table 4.

[0114] [Table 4]

[0115] Figure 8 shows the observation results of turbidity and bacterial count changes in broth bacterial culture. The horizontal axis represents the concentration value of the antibiotic drug, corresponding to the values ​​in the first row of Table 4, with the unit being μg / ml (number of μg per 1 mL), and the vertical axis represents the bacterial quantity value, with the unit being cells / μl (number of cells per 1 μl).

[0116] A total of 12 tubes were tested, and the 11th one was shadow Sex contrast ( N C) and the 12th one is Yang Sex contrast ( P C) was designated as one of the 10 tubes, and the other 10 were used as test tubes. Measurements were taken for all 12 tubes at each detection time.

[0117] The results of the electrical resistance method drug susceptibility test are shown in Figure 8. Specifically, the inhibition of ampicillin against the bacterium ATCC25922 Escherichia coli in this example was detected, and the minimum inhibitory concentration was 4 μg / ml.

[0118] In this example, bacterial drug susceptibility testing was also performed using three other methods. Following the operating manual for the VITEK microbial identification and drug susceptibility system from bioMérieux, France, the inhibition of ampicillin against the bacterium ATCC25922 E. coli in this example was detected, and the minimum inhibitory concentration was 4 μg / ml (μg per 1 mL). Using the Etest method, the detailed procedure followed the operating manual for the Etest drug susceptibility kit from Thermo Fisher Scientific, USA, to detect the inhibition of ampicillin against the bacterium ATCC25922 E. coli in this example, and the minimum inhibitory concentration was 2 μg / ml. Using the broth dilution method drug susceptibility testing, the detailed procedure referred to the broth dilution method drug susceptibility testing standards of the American Society for Clinical Laboratory Standards, to detect the inhibition of ampicillin against the bacterium ATCC25922 E. coli in this example, and the minimum inhibitory concentration was 4 μg / ml. All results were consistent and highly sensitive.

[0119] Conclusion: 1. The MIC (Minimum Inhibitory Concentration) was measured within 60 minutes. 2. In the embodiments of the present invention, the MIC (minimum inhibitory concentration) was measured within 60 minutes, and the results were consistent with those of the VITEK method (biomérieux drug susceptibility testing method), the Etest method, and the broth dilution method drug susceptibility testing. Therefore, the feasibility of the bacterial drug susceptibility detection method of the present invention is once again confirmed, and it has the remarkable beneficial effect of rapidly obtaining bacterial drug susceptibility results.

[0120] As can be seen from Examples 1 and 2, the inhibition results of the antimicrobial agent inhibition detection method of the present invention were compared and analyzed with those of the conventional method. The results were compared with VITEK (biomérieux antimicrobial susceptibility testing method), Etest, and BMD (broth dilution method), and the comparison criteria were determined based on the regulations of the FDA (U.S. Food and Drug Administration).

[0121] shadow Compared to sex controls, the drug susceptibility results were determined when the observed cell count decreased by 20%, 40%, 60%, or 80%, and the consistency with conventional methods was compared. In conclusion, the accuracy rate was 100% when the cell count decreased by 40% to 60% or more. Moreover, the best result was achieved when the cell count decreased by 60% or more. The time it took for the cell count to decrease by 40% to 60% varied depending on the bacterium, but all clinically common bacteria were completed within 90 to 120 minutes, and most clinically common bacteria were completed within 90 minutes.

[0122] (Example 3) 1. Proliferation experiment 1.1 Experimental Objectives In accordance with CLSI standards, six clinically common bacterial strains (ATCC29212, ATCC29213, ATCC27853, ATCC25922, Klebsiella pneumoniae ATCC700603, and Acinetobacter baumannii) are inoculated, and their growth tendencies are recorded to determine whether growth can be expected within two hours.

[0123] 1.2 Experimental Method 1.2.1 Yang Sex control: Detected on uninoculated culture medium, detected using an electrical resistance bacterial counter, and the number of particles was recorded.

[0124] 1.2.2 Strain preparation: In accordance with CLSI standards, a fresh strain of 0.5 McFarland, within 24 hours, was picked and 100 µl was added to 10 ml of culture medium.

[0125] 1.2.3 Record the results at 0 hours, 0.5 hours, 1 hour, and 1.5 hours respectively. Yang The results were analyzed after removing the gender background.

[0126] 2.3 The experimental results are shown in Figure 9. As can be seen from the growth experiment results, the bacteria had already undergone clear changes in 2 hours, and these changes could be clearly detected by the electrical resistance measurement method. This confirms the feasibility of electrical resistance measurement through observation and detection.

[0127] 2. Compare the drug susceptibility results after 2 hours and 24 hours (the feasibility of the electrical resistance method for bacterial drug susceptibility testing is determined by comparing the drug susceptibility results over the two time periods).

[0128] 2.1 Experimental Objectives For commonly used standard bacterial strains, we selected several Class A drugs and compared the results, examining the agreement between the 2-hour and 24-hour results. The bacterial strains and corresponding antibiotics are shown in Table 5.

[0129] [Table 5]

[0130] 2.2 Experimental Method 2.2.1 Strain preparation: In accordance with CLSI standards, fresh strains of the strain names listed in Table 5, each within 24 hours, were picked in quantities of 0.5 MacFarland picking.

[0131] 2.2.2 Inoculation: 100 µl of 0.5 mC McFarland bacterial suspension was added to each of the pre-prepared gradient antibiotic 48-well plates, and 500 µl was added to each well.

[0132] 2.2.3 Incubation and Detection: The bacteria were incubated at 37°C for 2 hours and detected using an electrical resistance bacterial counter. The instrument was adjusted to the highest sensitivity setting, the bacteria were counted, and the normal antibiotic susceptibility results after 24 hours were recorded, compared, and analyzed.

[0133] 2.3 Analysis of Experimental Results [Table 6]

[0134] As can be seen from the results in Figure 10 and Table 6, antibiotic susceptibility testing was performed on five clinically common bacterial strains against first-line drugs listed in the CLSI regulations, and the MIC (at 2 hours) was obtained by electrical resistance counting. shadow When the MIC (Increased Microfiltration Index) was determined using 60% of the susceptibility test value as the boundary point, and compared with the drug susceptibility results obtained by visual observation over 24 hours using the standard drug susceptibility testing method, the difference was within an acceptable range. Therefore, the feasibility of using electrical resistance counting in bacterial drug susceptibility testing is supported.

[0135] 3. Susceptibility agreement rate Eleven clinically common enterobacteria (two strains of Escherichia coli, Morganella morganii, Shigella, Enterobacter aerogenes, Citrobacter freundii, two strains of Klebsiella pneumoniae, Proteus mirabilis, Enterobacter cloaca, and Salmonella) were selected and inoculated into 96-well enterobacteria drug susceptibility reagent plates manufactured by Shandong Xinke Co., Ltd. according to CLSI regulations. The plates were incubated at 37°C for 2 hours and then inoculated into two reagent plates. The bacterial count results from one of the reagent plates were analyzed after 2 hours. shadow The results were compared with those of a sex control, and once the result value was 60% or higher, shadow Sex result values shadow The results were recorded as sensitivity values. On the other reagent plate, the experimental results were recorded over 24 hours, and the susceptibility agreement rate between 2 hours and 24 hours was determined. As shown in Figure 11, it was found that commonly used antibiotics showed a high agreement rate between drug susceptibility testing by electrical resistance measurement and conventional CLSI method results for 11 clinically common types of intestinal bacteria.

[0136] (Example 4) Examination of the agreement between the results of drug susceptibility testing of live bacteria and conventional methods:

[0137] 1.1 Experimental Objectives For commonly used standard bacterial strains, several Class A drugs were selected, and the results were compared. The consistency of the results at 2 hours and 24 hours was examined. The growth trend was recorded to determine whether growth could be expected at 2 hours. The bacterial strains and their corresponding antibiotics are shown in Table 7.

[0138] [Table 7]

[0139] 1.2 Experimental Method 1.2.1 Strain preparation: In accordance with CLSI standards, fresh strains of the strain names listed in Table 7, each within 24 hours, were picked in quantities of 0.5 MacFarland picking.

[0140] 1.2.2 Inoculation: 100 µl of 0.5 McFarland bacterial suspension was added to each of the pre-prepared gradient antibiotic 48-well plates, and 500 µl was added to each well.

[0141] 1.2.3 Incubation and Detection: Live bacteria were counted after incubation at 37°C for 2 hours, and the results of normal drug susceptibility after 24 hours were recorded, compared, and analyzed.

[0142] 1.3 Analysis of Experimental Results 1.3.1 Experimental Results Drug susceptibility results for Pseudomonas aeruginosa against ceftazidime: Rapid drug susceptibility test results for live cells: MIC=2. Conventional drug susceptibility test results: MIC=2. Detailed data on rapid drug sensitivity in live cells are shown in Table 8.

[0143] [Table 8]

[0144] Drug susceptibility results for Staphylococcus aureus to erythromycin: Rapid drug susceptibility test results for live cells: MIC = 0.25. Conventional drug susceptibility test results: MIC = 0.25. Detailed data on rapid drug susceptibility of live cells are shown in Table 9.

[0145] [Table 9]

[0146] Drug susceptibility results for Enterococcus faecalis to penicillin: Rapid drug susceptibility test results for live cells: MIC=1. Conventional drug susceptibility test results: MIC=2. Detailed data on rapid drug susceptibility of live cells are shown in Table 10.

[0147] [Table 10]

[0148] Drug susceptibility results for Klebsiella pneumoniae to gentamicin: Rapid drug susceptibility test results for live cells: MIC=8. Conventional drug susceptibility test results: MIC=8. Detailed data on rapid drug sensitivity in live cells are shown in Table 11.

[0149] [Table 11]

[0150] Drug susceptibility results for Acinetobacter baumannii to meropenem: Rapid drug susceptibility test results for live cells: MIC = 0.12. Conventional drug susceptibility test results: MIC = 0.12. Detailed data on rapid drug susceptibility of live cells are shown in Table 12.

[0151] [Table 12]

[0152] As can be seen from the results in Tables 7 to 12, antibiotic susceptibility testing was performed on five clinically common bacterial strains against first-line drugs listed in the CLSI regulations, and the MIC (at 2 hours) was obtained by live cell counting. shadow When comparing the results obtained by determining the MIC (MIC) using 60% of the sex count value as the boundary point with the drug susceptibility results obtained by visual observation over 24 hours using the conventional drug susceptibility testing method, the difference was within an acceptable range. Therefore, the feasibility of the live cell counting method in bacterial drug susceptibility testing is supported, and it is consistent with the conventional method.

[0153] The above-described examples are merely preferred embodiments of the present invention and do not limit the invention. Those skilled in the art will know that various modifications and changes are possible to the present invention. Any amendments, equivalent substitutions, improvements, etc., made without departing from the spirit of the invention are all within the scope of protection of the present invention.

Claims

1. A bacterial drug mixture is prepared by adding a predetermined concentration of antibacterial agent to the detected bacteria, and the detected bacteria without the antibacterial agent are used as a negative control. The steps include obtaining the current quantity of bacteria in the bacterial drug mixture and the current quantity of bacteria in the negative control when the interval between the time the antibacterial agent was added and the time elapsed to a first predetermined period, The steps include determining whether a predetermined concentration of the antimicrobial agent inhibits, partially inhibits, or does not inhibit the bacteria based on the ratio of the current number of bacteria in the bacterial drug mixture to the current number of bacteria in the negative control. Includes, If the ratio of the current number of bacteria in the bacterial drug mixture to the current number of bacteria in the negative control is equal to a first predetermined threshold, it is determined that the antibacterial agent at a predetermined concentration inhibits the bacteria. The first predetermined threshold is any value between 0 and 0.

6. If the ratio of the current number of bacteria in the bacterial drug mixture to the current number of bacteria in the negative control is equal to a second predetermined threshold, it is determined that the predetermined concentration of the antibacterial agent partially inhibits the bacteria. When the interval between the time the antibacterial agent was added and the second predetermined period is reached, the second current quantity of the bacteria in the bacterial drug mixture and the second current quantity of the bacteria in the negative control are obtained, provided that the second predetermined period is longer than the first predetermined period. If the ratio of the second current quantity of bacteria in the bacterial drug mixture to the second current quantity of bacteria in the negative control is equal to the first predetermined threshold, it is determined that the predetermined concentration of the antibacterial agent inhibits the bacteria. If the ratio of the current number of bacteria in the bacterial drug mixture to the current number of bacteria in the negative control is greater than a second predetermined threshold, it is determined that the predetermined concentration of the antibacterial agent does not inhibit the bacteria. The second predetermined threshold is any value between 0.6 and 0.

8. The current quantity of bacteria in the bacterial drug mixture and the current quantity of bacteria in the negative control are obtained by the electrical resistance counting method. The current quantity of bacteria in the bacterial drug mixture and the current quantity of bacteria in the negative control are as follows: A sample collection component for obtaining a sample of bacteria to be counted, A counting pool component comprising a micropore, a front pool, a rear pool, and electrodes, wherein the front pool and the rear pool are in communication via the micropore, each side of the micropore has one electrode, the liquid pressure between the front pool and the rear pool is negative, and the negative pressure causes the bacterial sample to be counted to enter the rear pool from the front pool through the micropore, A circuit control system for determining the number of bacteria in a bacterial sample to be counted based on pulse signals generated on both sides of the micropores, wherein the pulse signals indicate that bacteria in the bacterial sample to be counted have passed through the micropores. Acquired by a bacterial counter including, The diameter of the micropore is within the first target diameter range, provided that within the first target diameter range, only one bacterium passes through the micropore at a time when bacteria in the sample to be counted pass through the micropore. When the diameter of the micropore is within the first target diameter range, the diameter of the micropore is 50 μm, and the length of the micropore is 50 μm. A method for detecting the inhibition of an antimicrobial agent against bacteria in a drug susceptibility test, characterized in that the first predetermined period is any value between 1 hour and 1.5 hours.

2. The method according to claim 1, characterized in that the first predetermined threshold is any value between 0 and 0.

4.

3. The method according to Claim 1, characterized in that the first predetermined period is 1 hour or 1.5 hours, and the second predetermined period is 2 hours, 2.5 hours, or 3 hours.

4. The circuit control system is A first processor for detecting the pulse signal, transmitting the pulse signal to a processing device, and obtaining the number of bacteria in the bacterial sample to be counted transmitted from the processing device, wherein the number of bacteria in the bacterial sample to be counted is determined based on bacterial characteristic data represented by the pulse signal, or The method according to claim 1, further comprising a second processor for detecting the pulse signal and determining the number of bacteria in the sample of bacteria to be counted based on the bacterial characteristic data represented by the pulse signal.

5. The circuit control system is A first power supply circuit for providing a constant current to the micropores by the electrodes, wherein the pulse signal is a pulse signal triggered and generated when one or more bacteria pass through the micropores when the constant current is provided to the micropores, or The method according to claim 1, comprising a second power supply circuit for providing a constant voltage to the micropores by the electrodes, wherein the pulse signal is a pulse signal triggered and generated when one or more of the bacteria pass through the micropores when the constant voltage is provided to the micropores.

6. The current quantity of bacteria in the bacterial drug mixture and the current quantity of bacteria in the negative control are as follows: A step of adding a bacterial sample to be counted to a counting pool component, wherein the counting pool component includes a micropore, a front pool, a rear pool, and electrodes, the front pool and the rear pool are in communication through the micropore, the liquid pressure between the front pool and the rear pool is negative, the negative pressure causes the bacterial sample to enter the rear pool from the front pool through the micropore, and there is one electrode on each side of the micropore, and when the electrodes are turned on, there is a predetermined electrical resistance between the sides of the micropore. A step of detecting whether there is a pulse signal generated by a change in electrical resistance between the two sides of the micropore on both sides of the micropore, wherein the pulse signal indicates that bacteria in the bacterial sample to be counted have passed through the micropore. When pulse signals generated on both sides of the micropores are detected, the step of obtaining the number of bacteria in the bacterial sample to be counted, which is determined based on the pulse signals, The method according to claim 1, characterized in that it is obtained by a bacterial counting method including the method described in claim 1.

7. The step of obtaining the number of bacteria in the bacterial sample to be counted, which is determined based on the pulse signal, A step of transmitting the pulse signal to a processing device and obtaining the number of bacteria in the sample to be counted transmitted from the processing device, wherein the number of bacteria in the sample to be counted is determined based on bacterial characteristic data represented by the pulse signal, or The method according to 6, characterized by including the step of determining the number of bacteria in the bacterial sample to be counted based on bacterial characteristic data represented by the pulse signal.

Citation Information

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